Area of research
Statistical and Nonlinear Physics · Computer Networks and Communications
Research interest
Research interests include Nonlinear Dynamics and Pattern Formation, stochastic dynamics and bifurcation, Neural dynamics and brain function, and Quantum chaos and dynamical systems.
Fast-slow analysis of a stochastic mechanism for electrical bursting
Canard analysis reveals why a large Ca2+ window current promotes early afterdepolarizations in cardiac myocytes
Phantom bursting may underlie electrical bursting in single pancreatic <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" altimg="si183.svg"><mml:mrow><mml:mi>β</mml:mi></mml:mrow></mml:math>-cells
Multi-mode attractors and spatio-temporal canards
Why pacing frequency affects the production of early afterdepolarizations in cardiomyocytes: An explanation revealed by slow-fast analysis of a minimal model
Why Pacing Frequency Affects the Production of Early Afterdepolarizations in Cardiomyocytes: An Explanation Revealed by Slow/Fast Analysis of a Minimal Model
Delayed loss of stability due to the slow passage through Hopf bifurcations in reaction–diffusion equations
Transitions between bursting modes in the integrated oscillator model for pancreatic β-cells
M-Current Expands the Range of Gamma Frequency Inputs to Which a Neuronal Target Entrains
Dynamical systems analysis of the Maasch–Saltzman model for glacial cycles
Amplitude-Modulated Bursting: A Novel Class of Bursting Rhythms
Mathematical Analysis of Complex Cellular Activity
Geometric Singular Perturbation Analysis of Bursting Oscillations in Pituitary Cells
Multiple Geometric Viewpoints of Mixed Mode Dynamics Associated with Pseudo-plateau Bursting
A geometric understanding of how fast activating potassium channels promote bursting in pituitary cells
Bifurcations of canard-induced mixed mode oscillations in a pituitary Lactotroph model